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Updated: Jan 22, 2026

A Cryoinjury Model to Study Myocardial Infarction in the Mouse
Published on: September 19, 2019
Expandable human cardiovascular progenitors from stem cells for regenerating mouse heart after myocardial infarction
Verena Schwach1,2, Maria Gomes Fernandes3, Saskia Maas1,3
1Department of Anatomy and Embryology, Leiden University Medical Center, Einthovenweg, Leiden, The Netherlands.
Insights
Human pluripotent stem cell-derived cardiovascular progenitor cells (CPCs) can be expanded and differentiated in vivo. Transplanted CPCs reduced fibrosis and prevented cardiac remodeling after myocardial infarction in mice.
Area of Science:
- Regenerative Medicine
- Cardiovascular Biology
- Stem Cell Therapy
Background:
- Cardiovascular diseases are a leading cause of death due to limited heart regeneration.
- Human pluripotent stem cell-derived cardiovascular progenitor cells (hPSC-CPCs) offer a promising cell source for cardiac repair.
- The adult human heart has a low capacity for regenerating lost cardiomyocytes (CMs).
Purpose of the Study:
- To investigate the impact of in vivo proliferation and differentiation of hPSC-CPCs on cardiac remodeling and function post-myocardial infarction (MI).
- To assess the potential of drug-regulated expansion and differentiation of transplanted CPCs for cardiac repair.
- To evaluate the efficacy of extensive remuscularization and revascularization in a mouse MI model.
Main Methods:
- Transplantation of doxycycline (DOX)-inducible hPSC-CPCs into immunocompromised mice with induced MI.
- In vivo expansion and differentiation of CPCs regulated by DOX and bFGF.
- Assessment of CPC lineage commitment, self-renewal, and differentiation in subcutaneous and myocardial sites.
- Evaluation of cardiac remodeling and function using magnetic resonance imaging.
Main Results:
- Transplanted CPCs robustly expanded both subcutaneously and in the myocardium under DOX/bFGF induction.
- Upon withdrawal of inducing factors, CPCs efficiently differentiated into cardiomyocytes, endothelial cells, and smooth muscle cells.
- Engraftment of CPCs post-MI significantly reduced infarct fibrosis and prevented left ventricular remodeling.
- Cardiac function, assessed by MRI, remained unaltered despite reduced remodeling.
Conclusions:
- In situ expansion of hPSC-CPCs at the progenitor stage is a viable strategy for cardiac repair.
- This approach can lead to the formation of large grafts, reducing infarct size and fibrosis.
- Expanding cells in situ may be less damaging than injecting large numbers of differentiated cardiomyocytes.
Aims:
Cardiovascular diseases caused by loss of functional cardiomyocytes (CMs) are a major cause of mortality and morbidity worldwide due in part to the low regenerative capacity of the adult human heart. Human pluripotent stem cell (hPSC)-derived cardiovascular progenitor cells (CPCs) are a potential cell source for cardiac repair. The aim of this study was to examine the impact of extensive remuscularization and coincident revascularization on cardiac remodelling and function in a mouse model of myocardial infarction (MI) by transplanting doxycycline (DOX)-inducible (Tet-On-MYC) hPSC-derived CPCs in vivo and inducing proliferation and cardiovascular differentiation in a drug-regulated manner.
Methods And Results:
CPCs were injected firstly at a non-cardiac site in Matrigel suspension under the skin of immunocompromised mice to assess their commitment to the cardiovascular lineage and ability to self-renew or differentiate in vivo when instructed by systemically delivered factors including DOX and basic fibroblast growth factor (bFGF). CPCs in Matrigel were then injected intra-myocardially in mice subjected to MI to assess whether expandable CPCs could mediate cardiac repair. Transplanted CPCs expanded robustly both subcutis and in the myocardium using the same DOX/growth factor inducing regime. Upon withdrawal of these cell-renewal factors, CPCs differentiated with high efficiency at both sites into the major cardiac lineages including CMs, endothelial cells, and smooth muscle cells. After MI, engraftment of CPCs in the heart significantly reduced fibrosis in the infarcted area and prevented left ventricular remodelling, although cardiac function determined by magnetic resonance imaging was unaltered.
Conclusion:
Replacement of large areas of muscle may be required to regenerate the heart of patients following MI. Our human/mouse model demonstrated that proliferating hPSC-CPCs could reduce infarct size and fibrosis resulting in formation of large grafts. Importantly, the results suggested that expanding transplanted cells in situ at the progenitor stage maybe be an effective alternative causing less tissue damage than injection of very large numbers of CMs.
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